淡出
电化学
氧化还原
阴极
扩散
衰退
氧化态
密度泛函理论
材料科学
阳离子聚合
扩散阻挡层
电池(电)
化学
化学工程
无机化学
金属
电极
纳米技术
物理化学
热力学
计算化学
冶金
图层(电子)
高分子化学
功率(物理)
工程类
物理
操作系统
电信
解码方法
计算机科学
作者
Anu Maria Augustine,Vishnu Sudarsanan,P. Ravindran
出处
期刊:Cornell University - arXiv
日期:2022-01-01
标识
DOI:10.48550/arxiv.2206.11496
摘要
The increasing relevance of energy storage technologies demands high-capacity cathode materials for Li-ion batteries. Recently, Li-rich defect anti-fluorite Li$_5$FeO$_4$ has emerged as a high-capacity cathode material exhibiting simultaneous anionic and cationic redox without significant oxygen release. But suffers from irreversible structural change and capacity fade during cycling. Herein we investigate the suppressed capacity fade reported in Co substituted Li$_5$FeO$_4$ and establish the optimal performance through tuning the concentration and oxidation state of Co. We have substituted Co at the Fe site and carried out a detailed analysis of structural, magnetic, electronic, and electrochemical properties using first-principles density functional theory calculations. The extended stability and suppressed capacity fading are found only in specific compositions depending on the Co/Li concentration and the oxidation state of Co. The reasons behind suppressed capacity fading in Co substituted systems have been unveiled on the basis of bonding analyses and proposed as a strategy to suppress the voltage fading reported in Li-rich materials due to transition metal migration. From the evaluation of thermodynamic stability and electronic structure, Li$_{5.5}$Fe$_{0.5}$Co$_{0.5}$O$_4$, Li$_5$Fe$_{0.25}$Co$_{0.75}$O$_4$, and Li$_{4.5}$Fe$_{0.5}$Co$_{0.5}$O$_4$ are found to exhibit better electrical conductivity than Li$_5$FeO$_4$. All these systems have voltage in the range of 3 to 5 V and exhibit three dimensional Li diffusion pathway with a diffusion barrier height of around 0.3 eV. From Li$_5$Fe$_{0.25}$Co$_{0.75}$O$_4$, one can delithiate three Li-ions without structural change and oxygen release, therefore expected to acquire a reversible capacity of around 513 mAh/g. Moreover, as in pristine Li$_5$FeO$_4$, the selected Co substituted systems also exhibit simultaneous anionic and cationic redox without significant O2 release.
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